Engineering PapersSearch

NASA NTRS · 20030015805

Microwave-Driven Multifunctional Capability of Membrane Structures

Abstract

A large, ultra lightweight space structure, such as solar sails and Gossamer spacecrafts, requires a distributed power source to alleviate wire networks, unlike the localized on-board power infrastructures typically found in most small spacecrafts. The concept of microwave-driven multifunctional capability for membrane structures is envisioned as the best option to alleviate the complexity associated with hard-wired control circuitry and on-board power infrastructures. A rectenna array based on a patch configuration for high voltage output was developed to drive membrane actuators, sensors, probes, or other devices. Networked patch rectenna array receives and converts microwave power into a DC power for an array of smart actuators. To use microwave power effectively, the concept of a power allocation and distribution (PAD) circuit is adopted for networking a rectenna/actuator patch array. The use of patch rectennas adds a significant amount of rigidity to membrane flexibility and they are relatively heavy. A dipole rectenna array (DRA) appears to be ideal for thin-film membrane structures, since DRA is flexible and light. Preliminary design and fabrication of PAD circuitry that consists of a few nodal elements were made for laboratory testing. The networked actuators were tested to correlate the network coupling effect, power allocation and distribution, and response time.

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Choi, Sang H., Chu, Sang-Hyong, Song, Kyo D., King, Glen C.. 2002-01-01. Microwave-Driven Multifunctional Capability of Membrane Structures. https://ntrs.nasa.gov/citations/20030015805

Cite the original work for its findings. Save a collection to share your selection of sources.